4.7 Article

Advancement in cellulose-based multifunctional high conductive PNIPAAm/PPy hydrogel/cotton composites for EMI shielding

Journal

CELLULOSE
Volume 29, Issue 12, Pages 6963-6981

Publisher

SPRINGER
DOI: 10.1007/s10570-022-04698-0

Keywords

Cellulose fabric; EMI shielding; Multifunctional; PPy hydrogel; Comfort regulation

Funding

  1. Opening Project of Key Laboratory of Clean Dyeing and Finishing Technology of Zhejiang Province [QJRZ2107]
  2. Open Project of State Key Laboratory of Supramolecular Structure and Materials [sklssm2022028]
  3. Opening Project of Hubei Key Laboratory of Biomass Fibers and Eco-dyeing Finishing [STRZ202126]
  4. Opening Project of Hubei Key Laboratory of Plasma Chemistry and Advanced Materials

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A facile strategy was proposed for preparing a cellulose-based multifunctional PNIPAAm/PPy hydrogel/cotton (PPHC) EMI shielding composites, which exhibited high-efficient electro-photothermal conversion and comfort regulation functions.
Exploitation of cotton fabric as electromagnetic interference (EMI) shielding substrates have attracted a growing interest due to their desirable low carbon footprint, economic feasibility, and sustainability. Herein, a facile strategy was proposed for preparing a cellulose-based multifunctional PNIPAAm/PPy hydrogel/cotton (PPHC) EMI shielding composites with simultaneous high-efficient electro-photothermal conversion and comfort regulation functions. The PPHC was fabricated via in situ polymerization conductive PPy hydrogel on cotton substrate followed by deposition of PNIPAAm. Benefiting from the unique interconnected three-dimensional networked conductive structure of PPy hydrogel, the obtained PPHC composites exhibited high conductivity (15 mS/cm), and EMI shielding effectiveness (EMI SE similar to 40 dB) in the frequency of 8.2-12.3 GHz. Moreover, the PNIPAAm coating endowed the composite fabrics with adjustable wettability performance in response to external temperature, leading to excellent comfort regulation performance. This work provided feasible avenue toward low cost and sustainability cotton-based EMI shielding composites with efficient EMI shielding and comfort regulation performance. [GRAPHICS] .

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